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Reliability-based-design-optimization of base isolated buildings considering stochastic system parameters subjected to random earthquakes

机译:考虑随机地震作用的随机系统参数的基础隔震建筑基于可靠性的设计优化

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摘要

Base isolation (BI) is established as an effective control strategy for improving seismic performance of structures. The studies on performance of BI system under stochastic earthquake load are notable. However, most of the studies consider system parameters as deterministic and the optimal isolator characteristics are obtained accordingly. A major limitation of such deterministic approach is that the uncertainties in the performance related decision variables cannot be included in the parameters optimization process. But, the safety of a BI system can be significantly affected due to uncertainty in the system parameters. The present study deals with the Reliability-Based-Design-Optimization (RBDO) of BI system to mitigate seismic vibration effects considering system parameter uncertainty. With the aid of matrix perturbation theory and first order Taylor series expansion, the concept of total probability theory is used to evaluate the unconditional response of structures under parameter uncertainty. For this, the conditional second order information of responses is obtained in the random vibration framework. Subsequently, the unconditional failure probability of the primary structure is used as the objective function in order to obtain the optimum parameters of the isolator. The proposed design is tolerant to the uncertainty and provides estimate of the enhanced risk unforeseen in the deterministic system. A multistoried building frame isolated by Lead-Rubber-Bearing (LRB) is taken up for numerical illustration and to elucidate the effect of parameter uncertainty on the optimum performance of BI system.
机译:建立基础隔离(BI)作为改善结构抗震性能的有效控制策略。随机地震作用下BI系统性能的研究值得关注。但是,大多数研究认为系统参数是确定性的,因此可以得到最佳的隔离器特性。这种确定性方法的主要局限性在于,与性能相关的决策变量中的不确定性不能包含在参数优化过程中。但是,由于系统参数的不确定性,BI系统的安全性可能会受到重大影响。本研究涉及BI系统的基于可靠性的设计优化(RBDO),以减轻考虑系统参数不确定性的地震振动影响。借助矩阵摄动理论和一阶泰勒级数展开式,使用总概率理论的概念来评估结构在参数不确定性下的无条件响应。为此,在随机振动框架中获得响应的条件二阶信息。随后,将一次结构的无条件失效概率用作目标函数,以获得隔离器的最佳参数。拟议的设计可以容忍不确定性,并提供对确定性系统中无法预料的增强风险的估计。本文采用铅橡胶轴承(LRB)隔离的多层建筑框架进行数值说明,并阐明参数不确定性对BI系统最佳性能的影响。

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